EDBT 2026 Demo / reviewers in the wild / expert
Erik Bongcam-Rudloff
dblp:84/382
· DBLP profile ↗
10ranked-venue papers
1as first author
1since 2021 · last 2021
0000-0002-1947-8288ORCID · verified
Domains — the database's venue-derived domains; a paper can count in several
Applied, interdisciplinary, general and emerging computing · 10 · 1 first-author · 1 since 2021
Expertise — from the expertise taxonomy: the topics of the expert's papers under the CCF categories. A weight counts papers with recency: 1 for a paper about the topic, 0.3 when the topic is its context, halved every five years.
| Interdisciplinary, comprehensive, and emerging computing
2 papers |
Bioinformatics and computational biology · 80% Computing education · 20% |
Topics — the 3 heaviest of 4, each with the papers that count most for it
| Topic | Weight | Papers | Last | Evidence papers |
|---|---|---|---|---|
Bioinformatics and computational biology
metagenomics |
0.4 | 1 | 2019 | Simulating Illumina metagenomic data with InSilicoSeq · Bioinform. 2019 |
Bioinformatics and computational biology
sequencing simulation |
0.4 | 1 | 2019 | Simulating Illumina metagenomic data with InSilicoSeq · Bioinform. 2019 |
Computing education
bioinformatics training |
0.2 | 1 | 2015 | The GOBLET training portal: a global repository of bioinformatics training materials, courses and trainers · Bioinform. 2015 |
Methods — techniques the papers use, named apart from their topics
in silico read simulation · 0.4portal development · 0.2
| Year | Publication | Venue | Position |
|---|---|---|---|
| 2021 | Metagenomics workflow for hybrid assembly, differential coverage binning, metatranscriptomics and pathway analysis (MUFFIN)abstractMetagenomics has redefined many areas of microbiology. However, metagenome-assembled genomes (MAGs) are often fragmented, primarily when sequencing was performed with short reads. Recent long-read sequencing technologies promise to improve genome reconstruction. However, the integration of two different sequencing modalities makes downstream analyses complex. We, therefore, developed MUFFIN, a complete metagenomic workflow that uses short and long reads to produce high-quality bins and their annotations. The workflow is written by using Nextflow, a workflow orchestration software, to achieve high reproducibility and fast and straightforward use. This workflow also produces the taxonomic classification and KEGG pathways of the bins and can be further used for quantification and annotation by providing RNA-Seq data (optionally). We tested the workflow using twenty biogas reactor samples and assessed the capacity of MUFFIN to process and output relevant files needed to analyze the microbial community and their function. MUFFIN produces functional pathway predictions and, if provided de novo metatranscript annotations across the metagenomic sample and for each bin. MUFFIN is available on github under GNUv3 licence: https://github.com/RVanDamme/MUFFIN. Renaud Van Damme, Martin Hölzer, Adrian Viehweger, Bettina Müller, Erik Bongcam-Rudloff, Christian Brandt |
PLoS Comput. Biol. | 5 |
| 2019 | Simulating Illumina metagenomic data with InSilicoSeqabstractMotivation: The accurate in silico simulation of metagenomic datasets is of great importance for benchmarking bioinformatics tools as well as for experimental design. Users are dependant on large-scale simulation to not only design experiments and new projects but also for accurate estimation of computational needs within a project. Unfortunately, most current read simulators are either not suited for metagenomics, out of date or relatively poorly documented. In this article, we describe InSilicoSeq, a software package to simulate metagenomic Illumina sequencing data. InsilicoSeq has a simple command-line interface and extensive documentation. Results: InSilicoSeq is implemented in Python and capable of simulating realistic Illumina (meta) genomic data in a parallel fashion with sensible default parameters. Availability and implementation: Source code and documentation are available under the MIT license at https://github.com/HadrienG/InSilicoSeq and https://insilicoseq.readthedocs.io/. Supplementary information: Supplementary data are available at Bioinformatics online. Hadrien Gourlé, Oskar Karlsson-Lindsjö, Juliette Hayer, Erik Bongcam-Rudloff |
Bioinform. | 4 |
| 2017 | The eBioKit, a stand-alone educational platform for bioinformaticsabstractBioinformatics skills have become essential for many research areas; however, the availability of qualified researchers is usually lower than the demand and training to increase the number of able bioinformaticians is an important task for the bioinformatics community. When conducting training or hands-on tutorials, the lack of control over the analysis tools and repositories often results in undesirable situations during training, as unavailable online tools or version conflicts may delay, complicate, or even prevent the successful completion of a training event. The eBioKit is a stand-alone educational platform that hosts numerous tools and databases for bioinformatics research and allows training to take place in a controlled environment. A key advantage of the eBioKit over other existing teaching solutions is that all the required software and databases are locally installed on the system, significantly reducing the dependence on the internet. Furthermore, the architecture of the eBioKit has demonstrated itself to be an excellent balance between portability and performance, not only making the eBioKit an exceptional educational tool but also providing small research groups with a platform to incorporate bioinformatics analysis in their research. As a result, the eBioKit has formed an integral part of training and research performed by a wide variety of universities and organizations such as the Pan African Bioinformatics Network (H3ABioNet) as part of the initiative Human Heredity and Health in Africa (H3Africa), the Southern Africa Network for Biosciences (SAnBio) initiative, the Biosciences eastern and central Africa (BecA) hub, and the International Glossina Genome Initiative. Rafael Hernández-de-Diego, Etienne Pierre de Villiers, Tomas Klingström, Hadrien Gourlé, Ana Conesa, Erik Bongcam-Rudloff |
PLoS Comput. Biol. | 6 |
| 2015 | The GOBLET training portal: a global repository of bioinformatics training materials, courses and trainersabstractSUMMARY: Rapid technological advances have led to an explosion of biomedical data in recent years. The pace of change has inspired new collaborative approaches for sharing materials and resources to help train life scientists both in the use of cutting-edge bioinformatics tools and databases and in how to analyse and interpret large datasets. A prototype platform for sharing such training resources was recently created by the Bioinformatics Training Network (BTN). Building on this work, we have created a centralized portal for sharing training materials and courses, including a catalogue of trainers and course organizers, and an announcement service for training events. For course organizers, the portal provides opportunities to promote their training events; for trainers, the portal offers an environment for sharing materials, for gaining visibility for their work and promoting their skills; for trainees, it offers a convenient one-stop shop for finding suitable training resources and identifying relevant training events and activities locally and worldwide. AVAILABILITY AND IMPLEMENTATION: http://mygoblet.org/training-portal. Manuel Corpas, Rafael C. Jiménez, Erik Bongcam-Rudloff, Aidan Budd, Michelle D. Brazas, Pedro L. Fernandes, Bruno A. Gaëta, Celia W. G. van Gelder, Eija Korpelainen, Fran Lewitter, Annette McGrath, Daniel MacLean, Patricia M. Palagi, Kristian Rother, Jan Taylor, Allegra Via, Mick Watson, Maria Victoria Schneider, Terri K. Attwood |
Bioinform. | 3 |
| 2015 | GOBLET: The Global Organisation for Bioinformatics Learning, Education and TrainingabstractIn recent years, high-throughput technologies have brought big data to the life sciences. The march of progress has been rapid, leaving in its wake a demand for courses in data analysis, data stewardship, computing fundamentals, etc., a need that universities have not yet been able to satisfy--paradoxically, many are actually closing "niche" bioinformatics courses at a time of critical need. The impact of this is being felt across continents, as many students and early-stage researchers are being left without appropriate skills to manage, analyse, and interpret their data with confidence. This situation has galvanised a group of scientists to address the problems on an international scale. For the first time, bioinformatics educators and trainers across the globe have come together to address common needs, rising above institutional and international boundaries to cooperate in sharing bioinformatics training expertise, experience, and resources, aiming to put ad hoc training practices on a more professional footing for the benefit of all. Terri K. Attwood, Erik Bongcam-Rudloff, Michelle D. Brazas, Manuel Corpas, Pascale Gaudet, Fran Lewitter, Nicola J. Mulder, Patricia M. Palagi, Maria Victoria Schneider, Celia W. G. van Gelder |
PLoS Comput. Biol. | 2 |
| 2014 | Integrated Bio-Search: challenges and trends for the integration, search and comprehensive processing of biological informationabstractMany efforts exist to design and implement approaches and tools for data capture, integration and analysis in the life sciences. Challenges are not only the heterogeneity, size and distribution of information sources, but also the danger of producing too many solutions for the same problem. Methodological, technological, infrastructural and social aspects appear to be essential for the development of a new generation of best practices and tools. In this paper, we analyse and discuss these aspects from different perspectives, by extending some of the ideas that arose during the NETTAB 2012 Workshop, making reference especially to the European context. First, relevance of using data and software models for the management and analysis of biological data is stressed. Second, some of the most relevant community achievements of the recent years, which should be taken as a starting point for future efforts in this research domain, are presented. Third, some of the main outstanding issues, challenges and trends are analysed. The challenges related to the tendency to fund and create large scale international research infrastructures and public-private partnerships in order to address the complex challenges of data intensive science are especially discussed. The needs and opportunities of Genomic Computing (the integration, search and display of genomic information at a very specific level, e.g. at the level of a single DNA region) are then considered. In the current data and network-driven era, social aspects can become crucial bottlenecks. How these may best be tackled to unleash the technical abilities for effective data integration and validation efforts is then discussed. Especially the apparent lack of incentives for already overwhelmed researchers appears to be a limitation for sharing information and knowledge with other scientists. We point out as well how the bioinformatics market is growing at an unprecedented speed due to the impact that new powerful in silico analysis promises to have on better diagnosis, prognosis, drug discovery and treatment, towards personalized medicine. An open business model for bioinformatics, which appears to be able to reduce undue duplication of efforts and support the increased reuse of valuable data sets, tools and platforms, is finally discussed. Marco Masseroli, Barend Mons, Erik Bongcam-Rudloff, Stefano Ceri, Alexander E. Kel, François Rechenmann, Frédérique Lisacek, Paolo Romano 0001 |
BMC Bioinform. | 3 |
| 2013 | Best practices in bioinformatics training for life scientistsabstractThe mountains of data thrusting from the new landscape of modern high-throughput biology are irrevocably changing biomedical research and creating a near-insatiable demand for training in data management and manipulation and data mining and analysis. Among life scientists, from clinicians to environmental researchers, a common theme is the need not just to use, and gain familiarity with, bioinformatics tools and resources but also to understand their underlying fundamental theoretical and practical concepts. Providing bioinformatics training to empower life scientists to handle and analyse their data efficiently, and progress their research, is a challenge across the globe. Delivering good training goes beyond traditional lectures and resource-centric demos, using interactivity, problem-solving exercises and cooperative learning to substantially enhance training quality and learning outcomes. In this context, this article discusses various pragmatic criteria for identifying training needs and learning objectives, for selecting suitable trainees and trainers, for developing and maintaining training skills and evaluating training quality. Adherence to these criteria may help not only to guide course organizers and trainers on the path towards bioinformatics training excellence but, importantly, also to improve the training experience for life scientists. Allegra Via, Thomas Blicher, Erik Bongcam-Rudloff, Michelle D. Brazas, Catherine Brooksbank, Aidan Budd, Javier De Las Rivas, Jacqueline Dreyer, Pedro L. Fernandes, Celia W. G. van Gelder, Joachim Jacob, Rafael C. Jiménez, Jane E. Loveland, Federico Morán, Nicola J. Mulder, Tommi H. Nyrönen, Kristian Rother, Maria Victoria Schneider, Terri K. Attwood |
Briefings Bioinform. | 3 |
| 2009 | Annotation and visualization of endogenous retroviral sequences using the Distributed Annotation System (DAS) and eBioXabstractBACKGROUND: The Distributed Annotation System (DAS) is a widely used network protocol for sharing biological information. The distributed aspects of the protocol enable the use of various reference and annotation servers for connecting biological sequence data to pertinent annotations in order to depict an integrated view of the data for the final user. RESULTS: An annotation server has been devised to provide information about the endogenous retroviruses detected and annotated by a specialized in silico tool called RetroTector. We describe the procedure to implement the DAS 1.5 protocol commands necessary for constructing the DAS annotation server. We use our server to exemplify those steps. Data distribution is kept separated from visualization which is carried out by eBioX, an easy to use open source program incorporating multiple bioinformatics utilities. Some well characterized endogenous retroviruses are shown in two different DAS clients. A rapid analysis of areas free from retroviral insertions could be facilitated by our annotations. CONCLUSION: The DAS protocol has shown to be advantageous in the distribution of endogenous retrovirus data. The distributed nature of the protocol is also found to aid in combining annotation and visualization along a genome in order to enhance the understanding of ERV contribution to its evolution. Reference and annotation servers are conjointly used by eBioX to provide visualization of ERV annotations as well as other data sources. Our DAS data source can be found in the central public DAS service repository, http://www.dasregistry.org, or at http://loka.bmc.uu.se/das/sources. Alvaro Martinez Barrio, Erik Lagercrantz, Göran O. Sperber, Jonas Blomberg, Erik Bongcam-Rudloff |
BMC Bioinform. | 5 |
| 2009 | The 20th anniversary of EMBnet: 20 years of bioinformatics for the Life Sciences communityabstractThe EMBnet Conference 2008, focusing on 'Leading Applications and Technologies in Bioinformatics', was organized by the European Molecular Biology network (EMBnet) to celebrate its 20th anniversary. Since its foundation in 1988, EMBnet has been working to promote collaborative development of bioinformatics services and tools to serve the European community of molecular biology laboratories. This conference was the first meeting organized by the network that was open to the international scientific community outside EMBnet. The conference covered a broad range of research topics in bioinformatics with a main focus on new achievements and trends in emerging technologies supporting genomics, transcriptomics and proteomics analyses such as high-throughput sequencing and data managing, text and data-mining, ontologies and Grid technologies. Papers selected for publication, in this supplement to BMC Bioinformatics, cover a broad range of the topics treated, providing also an overview of the main bioinformatics research fields that the EMBnet community is involved in. Domenica D'Elia, Andreas Gisel, Nils-Einar Eriksson, Sophia Kossida, Kimmo Mattila, Lubos Klucar, Erik Bongcam-Rudloff |
BMC Bioinform. | 7 |
| 2008 | "Biobanks, biomolecular resources and bioinformatics for health care and medical research in Europe"abstractFor future European biobanks and genetic epidemiology projects it is essential to produce standards operating procedures (SOP) for efficient handling of the quality-control and data merging issues from different data sets. Along with databases detailing sample collections it is also necessary to ensure early access to important new research tools, and that state-of-the-art techniques are readily available. I will during this talk present some background information and I will then speak more in detail about a database that we propose can be used to complements the databases focused on the collection of samples of human and animal origin from well-characterized populations. MolMeth (Molecular Methods database) is a database system that catalogs laboratory protocols and methods for the life sciences. It is of particular value for large-scale applications in biobanks and systems biology, but also provides value in scientific communication about molecular procedures in general. It is designed to meet a growing need for structure in protocol specifications while offering convenience for contributors and easy access for end users. Structured protocols offer several advantages over current "flat file" protocol databases, such as allowing protocol presentation be adapted for different purposes. It also provides a foundation for automated reasoning regarding protocols. Erik Bongcam-Rudloff |
BIBE | 1 |